English

Self-Gravitating Scalar Field Configurations, Ultra Light Dark Matter and Galactic Scale Observations

Cosmology and Nongalactic Astrophysics 2026-01-01 v1 High Energy Physics - Phenomenology

Abstract

In this thesis, we investigate the possibility that dark matter consists of ultra light spin-zero particles with mass m1022 eVm \sim 10^{-22}\ \text{eV}. We focus on the role of self-interactions, assuming all other non-gravitational couplings to Standard Model particles are negligible. Such ultra light dark matter (ULDM) is expected to form stable self-gravitating scalar field configurations (solitons), whose properties depend on the particle mass and self-coupling λ\lambda. Using solutions of the Gross-Pitaevskii-Poisson equations, we explore how galactic-scale observations can constrain mm and λ\lambda. We show that observational upper limits on the mass enclosed in central galactic regions can probe both attractive and repulsive self-interactions with strengths λ±10961095\lambda \sim \pm 10^{-96} - 10^{-95}. We further demonstrate that self-interactions can allow ULDM to describe observed rotation curves as well as satisfy an empirical soliton-halo mass relation in low surface brightness galaxies for m1022 eVm \sim 10^{-22}\ \text{eV} and λ1090\lambda \gtrsim 10^{-90}. We also study tidal effects in satellite dwarf galaxies and find that attractive self-interactions can extend their lifetimes over cosmological timescales, allowing ULDM to evade recent constraints derived for the non-interacting case. Finally, we explore machine learning based inference of dark matter and baryonic parameters from galaxy rotation curves, showing that neural networks can recover parameters consistent with observations.

Keywords

Cite

@article{arxiv.2512.24350,
  title  = {Self-Gravitating Scalar Field Configurations, Ultra Light Dark Matter and Galactic Scale Observations},
  author = {Bihag Dave},
  journal= {arXiv preprint arXiv:2512.24350},
  year   = {2026}
}

Comments

Thesis accepted for the award of PhD degree from Ahmedabad University, September 2025. Based on arXiv:2202.11081, arXiv:2304.04463, arXiv:2310.19664 and arXiv:2412.03547